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Enhanced potency of daunorubicin against multidrug resistant subline KB-ChR-8-5-11 by a pulsed magnetic field
Y Liang1, C J Hannan, B K Chang
1Department of Radiology, Research and Nuclear Medicine, Medical College of Georgia, Augusta 30912, USA.
Abstract:
Tumor cell resistance to many unrelated anticancer drugs is a major obstacle during cancer chemotherapy. One mechanism of drug resistance is thought to be due to the efflux of anticancer drugs caused by P-glycoprotein. In recent years, magnetic fields have been found to enhance the potency of anticancer drugs, with favorable modulation of cancer therapy. In this study, KB-ChR-8-5-11, a multidrug resistant (MDR) human carcinoma subline, was used as a model to evaluate the ability of pulsed magnetic fields (PMF) to modulate the potency of daunorubicin (DNR) in vivo and to determine the appropriate order of exposure to drugs and PMF using an in vitro cytotoxicity assay. Solenoid coils with a ramped pulse current source were used at 250 pulses per second for both in vivo and in vitro experiments. For the in vivo study, KB-ChR-8-5-11 cells were inoculated into thymic Balbc-nu/nu female mice. Treatment was begun when the average tumor volume reached 250-450 mm3. Treatment consisted of whole body exposure to PMF for one hour, followed immediately by intravenous (i.v.) injection of 8 mg/kg DNR designated as day 0, and repeated on days 7 and 14. Among the various groups, significant differences in the tumor volume were found between PMF + saline and PMF + DNR groups (p = 0.0107) at 39 days and 42 days (p = 0.0101). No mice died in the PMF alone group, and no toxicity attributable to PMF was found during the experimental period. For the in vitro studies, the sulforhodamine blue (SRB) cytotoxicity assay was used to determine the effect of the sequence which cells are exposed to PMF and/or DNR. Cells were exposed to PMF either before (pre-PMF) or after (post-PMF) drug was added. Results showed that the IC50 was significantly different between controls and pre-PMF + DNR groups (P = 0.0096, P = 0.0088). The IC50 of the post-PMF + DNR group was not found to be significantly different from control groups. Thus, the data in this report demonstrates that PMF enhanced the potency of DNR against KB-ChR-8-5-11 xenograft in vivo, while the efficacy of DNR was potentiated in vitro by PMF exposure only when PMF exposure occurred in the presence of drug. The data in vitro suggest that the mechanism by which PMFs modulate DNR's potency may be by inhibition of the efflux pump, P-glycoprotein. Further work to determine conditions for maximum modulation of drug potency by PMFs is warranted.
Insights
Pulsed magnetic fields (PMF) enhance the effectiveness of the anticancer drug daunorubicin (DNR) in multidrug resistant (MDR) cancer models. This study found PMF potentiated DNR
Area of Science:
- Oncology
- Biophysics
- Biochemistry
Background:
- Multidrug resistance (MDR) in cancer chemotherapy is often mediated by P-glycoprotein efflux pumps.
- Pulsed magnetic fields (PMF) have shown potential in enhancing anticancer drug efficacy.
- Understanding the interaction between PMF and chemotherapy is crucial for improving cancer treatment outcomes.
Purpose of the Study:
- To evaluate the ability of PMF to modulate the potency of daunorubicin (DNR) in a multidrug resistant (MDR) human carcinoma model (KB-ChR-8-5-11) in vivo.
- To determine the optimal sequence of exposure to PMF and DNR using an in vitro cytotoxicity assay.
- To investigate the potential mechanism of PMF-enhanced drug potency, specifically P-glycoprotein inhibition.
Main Methods:
- In vivo studies involved inoculating KB-ChR-8-5-11 cells in mice and treating them with whole-body PMF exposure followed by intravenous DNR injections.
- In vitro studies utilized the sulforhodamine blue (SRB) cytotoxicity assay to assess drug response after sequential exposure to PMF and DNR (pre-PMF or post-PMF).
- Solenoid coils delivering pulsed magnetic fields at 250 pulses per second were used for both in vivo and in vitro experiments.
Main Results:
- In vivo, a significant reduction in tumor volume was observed in the PMF + DNR group compared to the PMF + saline control group (p = 0.0107 and p = 0.0101).
- No mortality or toxicity attributable to PMF was observed in the PMF alone group during the study.
- In vitro, PMF exposure prior to DNR addition (pre-PMF + DNR) significantly reduced the IC50, indicating enhanced drug potency, whereas post-PMF exposure did not show significant potentiation.
Conclusions:
- PMF effectively enhances the potency of daunorubicin against KB-ChR-8-5-11 xenografts in vivo.
- In vitro, PMF potentiates DNR efficacy only when applied before or during drug exposure, suggesting a mechanism involving inhibition of drug efflux.
- The findings suggest that PMF may inhibit the P-glycoprotein efflux pump, offering a novel strategy to overcome multidrug resistance in cancer therapy.
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